vote up 13 vote down star
10

I found the bottleneck in my python code, played around with psycho etc. Then decided to write a c/c++ extension for performance.

With the help of swig you almost don't need to care about arguments etc. Everything works fine.

Now my question: swig creates a quite large py-file which does a lot of 'checkings' and 'PySwigObject' before calling the actual .pyd or .so code.

Does anyone of you have any experience whether there is some more performance to gain if you hand-write this file or let swig do it.

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50% accept rate
Thanks, great question and some really insightful answers. – David Feb 5 at 3:56

7 Answers

vote up 7 vote down check

For sure you will always have a performance gain doing this by hand, but the gain will be very small compared to the effort required to do this. I don't have any figure to give you but I don't recommend this, because you will need to maintain the interface by hand, and this is not an option if your module is large!

You did the right thing to chose to use a scripting language because you wanted rapid development. This way you've avoided the early optimization syndrome, and now you want to optimize bottleneck parts, great! But if you do the C/python interface by hand you will fall in the early optimization syndrome for sure.

If you want something with less interface code, you can think about creating a dll from your C code, and use that library directly from python with cstruct.

Consider also Cpython if you want to use only python code in your program.

link|flag
you mistyped cython. If you are mindful of how cython works, it can be a very quick process to convert a python function to cython. I have had 30x speedups doing this for not much extra effort. – gnibbler Oct 12 at 6:31
vote up 13 vote down

You should consider Boost.Python if you are not planning to generate bindings for other languages as well with swig.

If you have a lot of functions and classes to bind, Py++ is a great tool that automatically generates the needed code to make the bindings.

Pybindgen may also be an option, but it's a new project and less complete that Boost.Python.


Edit:

Maybe I need to be more explicit about pro and cons.

  • Swig:

    pro: you can generate bindings for many scripting languages.

    cons: I don't like the way the parser works. I don't know if the made some progress but two years ago the C++ parser was quite limited. Most of the time I had to copy/past my .h headers add some % characters and give extra hints to the swig parser.

    I was also needed to deal with the Python C-API from time to time for (not so) complicated type conversions.

    I'm not using it anymore.

  • Boost.Python:

    pro: It's a very complete library. It allows you to do almost everything that is possible with the C-API, but in C++. I never had to write C-API code with this library. I also never encountered bug due to the library. Code for bindings either works like a charm or refuse compile.

    It's probably one of the best solutions currently available if you already have some C++ library to bind. But if you only have a small C function to rewrite, I would probably try with Cython.

    cons: if you don't have a pre-compiled Boost.Python library you're going to use Bjam (sort of make replacement). I really hate Bjam and its syntax.

    Python libraries created with B.P tend to become obese. It also takes a lot of time to compile them.

  • Py++: it's Boost.Python made easy. Py++ uses a C++ parser to read your code and then generates Boost.Python code automatically. You also have a great support from its author (no it's not me ;-) ).

    cons: only the problems due to Boost.Python itself.

  • Pybindgen:

    It generates the code dealing with the C-API. You can either describe functions and classes in a Python file, or let Pybindgen read your headers and generate bindings automatically (for this it uses pygccxml, a python library wrote by the author of Py++).

    cons: it's a young project, with a smaller team than Boost.Python. There are still some limitations: you cannot use multiple inheritance for your C++ classes, Callbacks (not automatically, custom callback handling code can be written, though). Translation of Python exceptions to C.

It's definitely worth a good look.

  • A new one: On 2009/01/20 (yesterday), the author of Py++ announced a new package for interfacing C/C++ code with python. It is based on ctypes. I didn't try it already but I will!
link|flag
thanks, swig has evolved in the last years. You just %include your .h file, and everything is done (another hour for unicode support and you are really done :-) My code works fine with swig - my question was if it is worth manually going through the generated .py code with all the pySwigObjects ... – RSabet Jan 20 at 19:02
These objects add some overhead. Pybindgen can probably generate much cleaner C code for your module. I played a little bit with it and in fact it generated a code that was very close to what I would have done manually. – ascobol Jan 21 at 8:35
vote up 7 vote down

Using Cython is pretty good. You can write your C extension with a Python-like syntax and have it generate C code. Boilerplate included. Since you have the code already in python, you have to do just a few changes to your bottleneck code and C code will be generated from it.

Example. hello.pyx:

cdef int hello(int a, int b):
    return a + b

That generates 601 lines of boilerplate code:

/* Generated by Cython 0.10.3 on Mon Jan 19 08:24:44 2009 */

#define PY_SSIZE_T_CLEAN
#include "Python.h"
#include "structmember.h"
#ifndef PY_LONG_LONG
  #define PY_LONG_LONG LONG_LONG
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static void __Pyx_AddTraceback(const char *funcname); /*proto*/

/* Type declarations */
/* Module declarations from helloworld */

static int __pyx_f_10helloworld_hello(int, int); /*proto*/


/* Implementation of helloworld */

/* "/home/nosklo/devel/ctest/hello.pyx":1
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 */

static  int __pyx_f_10helloworld_hello(int __pyx_v_a, int __pyx_v_b) {
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static void __pyx_init_filenames(void); /*proto*/

#if PY_MAJOR_VERSION >= 3
static struct PyModuleDef __pyx_moduledef = {
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static int __Pyx_InitCachedBuiltins(void) {
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static int __Pyx_InitGlobals(void) {
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#if PY_MAJOR_VERSION < 3
PyMODINIT_FUNC inithelloworld(void); /*proto*/
PyMODINIT_FUNC inithelloworld(void)
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PyMODINIT_FUNC PyInit_helloworld(void); /*proto*/
PyMODINIT_FUNC PyInit_helloworld(void)
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  Py_INCREF(__pyx_m);
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  /*--- Global init code ---*/
  /*--- Function export code ---*/
  /*--- Type init code ---*/
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#include "traceback.h"

static void __Pyx_AddTraceback(const char *funcname) {
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vote up 4 vote down

There be dragons here. Don't swig, don't boost. For any complicated project the code you have to fill in yourself to make them work becomes unmanageable quickly. If it's a plain C API to your library (no classes), you can just use ctypes. It will be easy and painless, and you won't have to spend hours trawling through the documentation for these labyrinthine wrapper projects trying to find the one tiny note about the feature you need.

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vote up 3 vote down

Before giving up on your python code, have a look at ShedSkin. They claim better performance than Psyco on some code (and also state that it is still experimental).

Else, there are several choices for binding C/C++ code to python.

Boost is lengthy to compile but is really the most flexible and easy to use solution.

I have never used SWIG but compared to boost, it's not as flexible as it's generic binding framework, not a framework dedicated to python.

Next choice is Pyrex. It allows to write pseudo python code that gets compiled as a C extension.

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thanks, but those cannot compare to plain C/C++. – RSabet Jan 19 at 21:47
I mention boost, which is pure C++, so your comment is inappropriate. – Bluebird75 Jan 20 at 8:56
I was refering to PyRex. Boost would just be a maybe more flexible alternative to swig. But what i would like to know if there is a significant performance gain, when hand writing the interface, instead of letting swig or boost create the code. Still thanks for the answer. ShedSkin was new to me. – RSabet Jan 23 at 18:04
vote up 3 vote down

Since you are concerned with speed and overhead, I suggest considering PyBindGen .

I have experience using it to wrap a large internal C++ library. After trying SWIG, SIP, and Boost.Python I prefer PyBindGen for the following reasons:

  1. A PyBindGen wrapper is pure-Python, no need to learn another file format
  2. PyBindGen generates Python C API calls directly, there is no speed-robbing indirection layer like SWIG.
  3. The generated C code is clean and simple to understand. I like Cython too, but trying to read its C output can be difficult at times.
  4. STL sequence containers are supported (we use a lot of std::vector's)
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vote up 2 vote down

If its not a big extension, boost::python might also be an option, it executes faster than swig, because you control what's happening, but it'll take longer to dev.

Anyways swig's overhead is acceptable if the amount of work within a single call is large enough. For example if you issue is that you have some medium sized logic block you want to move to C/C++, but that block is called within a tight-loop, frequently, you might have to avoid swig, but I can't really think of any real-world examples except for scripted graphics shaders.

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